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Mechanistic Insights into Radical-Mediated Cracking of n-Butylbenzene over CeO2(111) toward Selective Light Olefin
Huiyi Liu1, Fei Wang1, Yaxuan Xie1
1State Key Laboratory of Heavy Oil Processing, College of Chemistry and Chemical Engineering, China University of Petroleum (East China), Qingdao, Shandong 266580, China.
Abstract:
The direct catalytic cracking of long-chain alkyl aromatics into light olefins is a key strategy for efficient oil-to-chemicals conversion. While current research has primarily focused on solid acid catalysts, investigations of solid bases, particularly rare-earth metal oxides, remain scarce, and their mechanistic roles are poorly understood. Here, density functional theory (DFT) calculations followed by experimental validation were conducted to elucidate the cracking mechanism of n-butylbenzene on the CeO2(111) surface. The CeO2(111) facet provides bifunctional active sites: Lewis-basic surface oxygen (O2-) and redox-active Ce4+/Ce3+ centers cooperatively mediate hydrogen-atom and electron transfer processes to drive radical-based C-H and C-C bond activation. Compared with the carbanion pathway, C-H activation preferentially proceeds via a hydrogen atom transfer (HAT) mechanism, forming carbon-centered radicals that undergo β-scission to yield light olefins. Among the competing routes, C3-H activation followed by C1-C2 bond cleavage exhibits a relatively low energy barrier (1.75 eV), preferentially yielding propylene. In contrast, the ethylene-forming route is kinetically hindered by a higher barrier (2.25 eV), resulting from the dehydrogenation of surface-bound C2H5* species and surface electronic reorganization. The synergistic interplay between Ce 4f redox flexibility and surface basicity thus governs selective C-H/C-C bond activation and product distribution. This study provides fundamental insight into radical-mediated, nonacidic hydrocarbon cracking on rare-earth oxides and a mechanistic basis for designing a selective base-type oil-to-chemicals catalysts.
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